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Optimization of Regenerative Cooling Channel Topology for LOX/Methane Engine Throat Section under Extreme Thermal Conditions

  • Bowei Jiao
  • , Nanjia Yu*
  • *Corresponding author for this work
  • Beihang University
  • National Key Laboratory of Aerospace Liquid Propulsion

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Reusable rocket engines face extreme thermal challenges, particularly in critical regions such as the convergent section and throat, where conventional milled-channel regenerative cooling systems struggle to adapt to complex thermal environments. The use of liquid methane—a cryogenic hydrocarbon propellant—further complicates heat transfer due to flow inhomogeneity and transcritical phenomena. To address these limitations, this study introduces a fluid-solid coupled topology optimization (TO) methodology for designing advanced regenerative cooling channels in a liquid oxygen/methane engine’s convergent-throat assembly. By integrating temperature minimization and pressure drop reduction objectives, we generated multiple topology-optimized configurations through mathematical algorithms to determine optimal material distributions, enabling unprecedented design flexibility and precision. High-resolution three-dimensional numerical simulations revealed two critical mechanisms in supercritical methane transport: vortex generation and dissipation at flow junctions enhance convective heat transfer through intensified turbulence, while cross-sectional abruptions induce flow separation and turbulent mixing in supercritical fluids, improving thermal efficiency while mitigating thermal acceleration effects. Compared to conventional milled-channel designs, the TO-optimized structure achieves a maximum temperature reduction of 7% and pressure drop decrease of 14%, while maintaining structural integrity under extreme thermomechanical stresses. This research validates topology optimization as a transformative approach for rocket engine thermal management, demonstrating its potential to enhance cooling efficiency, reduce energy losses, and improve reusability in next-generation methane-fueled propulsion systems operating under aerospace extreme conditions..

Original languageEnglish
Title of host publicationIAF Space Propulsion Symposium - Held at the 76th International Astronautical Congress, IAC 2025
PublisherInternational Astronautical Federation, IAF
Pages895-899
Number of pages5
ISBN (Electronic)9798331329389
DOIs
StatePublished - 2025
Event2025 IAF Space Propulsion Symposium at the 76th International Astronautical Congress, IAC 2025 - Sydney, Australia
Duration: 29 Sep 20253 Oct 2025

Publication series

NameProceedings of the International Astronautical Congress, IAC
Volume2-F219594
ISSN (Print)0074-1795

Conference

Conference2025 IAF Space Propulsion Symposium at the 76th International Astronautical Congress, IAC 2025
Country/TerritoryAustralia
CitySydney
Period29/09/253/10/25

Keywords

  • Regenerative Cooling
  • Reusable rocket engines
  • Topology optimization

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